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比较转录组学和代谢产物分析揭示了鹰嘴豆对铁饥饿的基因型特异性响应。

Comparative transcriptomic and metabolite profiling reveals genotype-specific responses to Fe starvation in chickpea.

机构信息

National Institute of Plant Genome Research, Aruna Asaf Ali Marg, PO Box No. 10531, New Delhi, 110067, India.

出版信息

Physiol Plant. 2023 Mar;175(2):e13897. doi: 10.1111/ppl.13897.

DOI:10.1111/ppl.13897
PMID:36960640
Abstract

Iron deficiency is a major nutritional stress that severely impacts crop productivity worldwide. However, molecular intricacies and subsequent physiological and metabolic changes in response to Fe starvation, especially in leguminous crops like chickpea, remain elusive. In the present study, we investigated physiological, transcriptional, and metabolic reprogramming in two chickpea genotypes (H6013 and L4958) with contrasting seed iron concentrations upon Fe deficiency. Our findings revealed that iron starvation affected growth and physiological parameters of both chickpea genotypes. Comparative transcriptome analysis led to the identification of differentially expressed genes between the genotypes related to strategy I uptake, metal ions transporters, reactive oxygen species-associated genes, transcription factors, and protein kinases that could mitigate Fe deficiency. Our gene correlation network discovered several putative candidate genes like CIPK25, CKX3, WRKY50, NAC29, MYB4, and PAP18, which could facilitate the investigation of the molecular rationale underlying Fe tolerance in chickpea. Furthermore, the metabolite analysis also illustrated the differential accumulation of organic acids, amino acids and other metabolites associated with Fe mobilization in chickpea genotypes. Overall, our study demonstrated the comparative transcriptional dynamics upon Fe starvation. The outcomes of the current endeavor will enable the development of Fe deficiency tolerant chickpea cultivars.

摘要

缺铁是一种严重影响全球作物生产力的主要营养胁迫。然而,铁饥饿响应的分子复杂性以及随后的生理和代谢变化,特别是在像鹰嘴豆这样的豆科作物中,仍然难以捉摸。在本研究中,我们研究了两个具有不同种子铁浓度的鹰嘴豆基因型(H6013 和 L4958)在缺铁条件下的生理、转录和代谢重编程。我们的研究结果表明,铁饥饿影响了两个鹰嘴豆基因型的生长和生理参数。比较转录组分析确定了与策略 I 摄取、金属离子转运体、与活性氧相关的基因、转录因子和蛋白激酶相关的基因型间差异表达基因,这些基因可以缓解铁缺乏。我们的基因相关网络发现了几个可能的候选基因,如 CIPK25、CKX3、WRKY50、NAC29、MYB4 和 PAP18,它们可以促进对鹰嘴豆中铁耐受性的分子基础的研究。此外,代谢物分析还说明了与鹰嘴豆基因型中铁动员相关的有机酸、氨基酸和其他代谢物的差异积累。总的来说,我们的研究展示了铁饥饿时的比较转录动力学。当前研究的结果将有助于开发铁缺乏耐受的鹰嘴豆品种。

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